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Groundwater Radon in the Taiwan Subduction Zone

A Natural Strain-Meter for Earthquake Prediction

  • Book
  • © 2023

Overview

  • Focuses on how to monitor anomalous declines in groundwater radon concentration
  • Outlines geological requisites to site a radon monitoring well
  • Presents a physical mechanism to explain radon anomalies

Part of the book series: Advances in Geological Science (AGS)

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Table of contents (7 chapters)

Keywords

About this book

This book presents the mechanism of in-situ radon volatilization and outlines the geological requisites to site a radon monitoring well for earthquake warning. A small fractured aquifer under undrained conditions is an effective natural strain meter for earthquake prediction. It shows significant merit on a local basis, and most importantly, the analysis can also be applied globally in subduction zones with similar tectonic settings and physical–chemical relationships.

Between 2003 and 2010, anomalous declines in groundwater radon concentration were recurrently recorded at Antung, Taiwan, which are considered as precursory to local major earthquakes. The correlations between radon decline and earthquake magnitude are useful for early warning of local main earthquakes.

The book consists of 7 chapters. Chapter 1 presents background information and the objectives of the book. Chapter 2 illustrates the methods of monitoring groundwater radon and a brief review of earthquake prediction research using groundwater radon. Chapter 3 provides the details of anomalous decrease in groundwater radon before the Taiwan Mw 6.8 Chengkung Earthquake of 2003. Chapter 4 provides the description of the mechanism of groundwater-radon volatilization. Chapter 5 shows the recurrent anomalous declines in groundwater radon concentration consistently recorded at Antung, Taiwan, prior to local main earthquakes that occurred between 2003 and 2010. Monitoring groundwater radon in small, unconfined fractured aquifers is explained in Chapter 6, followed by an analysis of correlating precursory declines in groundwater radon, precursory time with earthquake magnitudes for small, confined fractured aquifers in Chapter 7.

Authors and Affiliations

  • Department of Resources Engineering, National Cheng Kung University, Tainan, Taiwan

    Ming-Ching Tom  Kuo

About the author

Ming-Ching Tom Kuo, Ph.D., is a professor of petroleum engineering at National Cheng Kung University, Taiwan. He gained his industrial experience while working at Stanford Research Institute, Occidental Petroleum, and Mobil. He is experienced in oil, gas, and geothermal production. His research interests include groundwater hydrology, groundwater and soil remediation, and monitoring of groundwater radon. Since 2003, his research has focused on the applications of recurrent radon precursors to forecast local large earthquakes in the Taiwan subduction zone.

Dr. Kuo earned his B.S. degree in chemical engineering from National Taiwan University, an M.S. in chemical engineering from Kansas State University, and a Ph.D. in environmental engineering from Stanford University.


Bibliographic Information

  • Book Title: Groundwater Radon in the Taiwan Subduction Zone

  • Book Subtitle: A Natural Strain-Meter for Earthquake Prediction

  • Authors: Ming-Ching Tom  Kuo

  • Series Title: Advances in Geological Science

  • DOI: https://doi.org/10.1007/978-981-99-5350-9

  • Publisher: Springer Singapore

  • eBook Packages: Earth and Environmental Science, Earth and Environmental Science (R0)

  • Copyright Information: The Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2023

  • Hardcover ISBN: 978-981-99-5349-3Published: 09 September 2023

  • Softcover ISBN: 978-981-99-5352-3Due: 10 October 2023

  • eBook ISBN: 978-981-99-5350-9Published: 08 September 2023

  • Series ISSN: 2524-3829

  • Series E-ISSN: 2524-3837

  • Edition Number: 1

  • Number of Pages: XIX, 83

  • Number of Illustrations: 29 b/w illustrations, 12 illustrations in colour

  • Topics: Geochemistry, Geophysics/Geodesy, Geology, Natural Hazards

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